Javascript must be enabled to continue!
Hemimetabolous insects elucidate the origin of sexual development via alternative splicing
View through CrossRef
ABSTRACT
Insects are the only animals in which sexual differentiation is controlled by sex-specific RNA splicing. The
doublesex
(
dsx
) transcription factor produces distinct male and female protein isoforms (DsxM and DsxF) under the control of the RNA splicing factor
transformer
(
tra
).
tra
itself is also alternatively spliced so that a functional Tra protein is only present in females; thus, DsxM is produced by default, while DsxF expression requires Tra. The sex-specific Dsx isoforms are essential for both male and female sexual differentiation. This pathway is profoundly different from the molecular mechanisms that control sex-specific development in other animal groups. In animals as different as vertebrates, nematodes, and crustaceans, sexual differentiation involves male-specific transcription of
dsx
-related transcription factors that are not alternatively spliced and play no role in female sexual development. To understand how the unique splicing-based mode of sexual differentiation found in insects evolved from a more ancestral transcription-based mechanism, we examined
dsx
and
tra
expression in three basal, hemimetabolous insect orders. We find that functional Tra protein is limited to females in the kissing bug
Rhodnius prolixus
(Hemiptera), but is present in both sexes in the louse
Pediculus humanus
(Phthiraptera) and the cockroach
Blattella germanica
(Blattodea). Although alternatively spliced
dsx
isoforms are seen in all these insects, they are sex-specific in the cockroach and the kissing bug but not in the louse. In
B. germanica
, RNAi experiments show that
dsx
is necessary for male, but not female, sexual differentiation, while
tra
controls female development via a
dsx-
independent pathway. Our results suggest that the distinctive insect mechanism based on the
tra-dsx
splicing cascade evolved in a gradual, mosaic process: sex-specific splicing of
dsx
predates its role in female sexual differentiation, while the role of
tra
in regulating
dsx
splicing and in sexual development more generally predates sex-specific expression of the Tra protein. We present a model where the canonical
tra
-
dsx
axis originated via merger between expanding
dsx
function (from males to both sexes) and narrowing
tra
function (from a general splicing factor to the dedicated regulator of
dsx
).
Title: Hemimetabolous insects elucidate the origin of sexual development via alternative splicing
Description:
ABSTRACT
Insects are the only animals in which sexual differentiation is controlled by sex-specific RNA splicing.
The
doublesex
(
dsx
) transcription factor produces distinct male and female protein isoforms (DsxM and DsxF) under the control of the RNA splicing factor
transformer
(
tra
).
tra
itself is also alternatively spliced so that a functional Tra protein is only present in females; thus, DsxM is produced by default, while DsxF expression requires Tra.
The sex-specific Dsx isoforms are essential for both male and female sexual differentiation.
This pathway is profoundly different from the molecular mechanisms that control sex-specific development in other animal groups.
In animals as different as vertebrates, nematodes, and crustaceans, sexual differentiation involves male-specific transcription of
dsx
-related transcription factors that are not alternatively spliced and play no role in female sexual development.
To understand how the unique splicing-based mode of sexual differentiation found in insects evolved from a more ancestral transcription-based mechanism, we examined
dsx
and
tra
expression in three basal, hemimetabolous insect orders.
We find that functional Tra protein is limited to females in the kissing bug
Rhodnius prolixus
(Hemiptera), but is present in both sexes in the louse
Pediculus humanus
(Phthiraptera) and the cockroach
Blattella germanica
(Blattodea).
Although alternatively spliced
dsx
isoforms are seen in all these insects, they are sex-specific in the cockroach and the kissing bug but not in the louse.
In
B.
germanica
, RNAi experiments show that
dsx
is necessary for male, but not female, sexual differentiation, while
tra
controls female development via a
dsx-
independent pathway.
Our results suggest that the distinctive insect mechanism based on the
tra-dsx
splicing cascade evolved in a gradual, mosaic process: sex-specific splicing of
dsx
predates its role in female sexual differentiation, while the role of
tra
in regulating
dsx
splicing and in sexual development more generally predates sex-specific expression of the Tra protein.
We present a model where the canonical
tra
-
dsx
axis originated via merger between expanding
dsx
function (from males to both sexes) and narrowing
tra
function (from a general splicing factor to the dedicated regulator of
dsx
).
Related Results
Genome-wide survey of allele-specific splicing in humans
Genome-wide survey of allele-specific splicing in humans
Abstract
Background
Accurate mRNA splicing depends on multiple regulatory signals encoded in the transcribed RNA sequence. Many examples of mutat...
Abstract 778: Dysregulation of alternative mRNA splicing by oncogenic KRAS in lung adenocarcinoma
Abstract 778: Dysregulation of alternative mRNA splicing by oncogenic KRAS in lung adenocarcinoma
Abstract
Alternative mRNA splicing is dysregulated in many cancers including lung adenocarcinoma. These aberrant splicing events can sometimes be explained by mutati...
Abstract 1423: Integrative analysis predicts lncRNA regulating gene alternative splicing in breast cancer
Abstract 1423: Integrative analysis predicts lncRNA regulating gene alternative splicing in breast cancer
Abstract
Background: Non-coding region occupies 98% of the whole human genome and plays a
regulatory role for protein-coding genes. About 95% of the p...
Harnessing the genetic diversity engendered by alternative gene splicing
Harnessing the genetic diversity engendered by alternative gene splicing
Our original objectives were to assess the unexplored dimension of alternative splicing as a source of genetic variation. In particular, we sought to initially establish an alterna...
Abstract 1513: Pan-cancer analysis of alternative splicing patterns and association to genomic aberrations
Abstract 1513: Pan-cancer analysis of alternative splicing patterns and association to genomic aberrations
Abstract
Alternative splicing of pre-messenger RNA is responsible for the diversity of transcriptome and proteome, with the majority of multi exon genes producing mu...
Regulation of Alternative Splicing in B-Cell ALL By DYRK1A
Regulation of Alternative Splicing in B-Cell ALL By DYRK1A
DYRK1A, located in the Down syndrome critical region of chromosome 21, is a serine and threonine kinase that controls multiple cellular processes including apoptosis, cell cycle, t...
Global regulation of alternative splicing by adenosine deaminase acting on RNA (ADAR)
Global regulation of alternative splicing by adenosine deaminase acting on RNA (ADAR)
Alternative mRNA splicing is a major mechanism for gene regulation and transcriptome diversity. Despite the extent of the phenomenon, the regulation and specificity of the splicing...
Complete metamorphosis and microbiota turnover in insects
Complete metamorphosis and microbiota turnover in insects
Abstract
The insects constitute the majority of animal diversity. Most insects are holometabolous: during complete metamorphosis their bodies are radically re-organ...

